Patents by Inventor Sergey Igorevich IVANOV

Sergey Igorevich IVANOV has filed for patents to protect the following inventions. This listing includes patent applications that are pending as well as patents that have already been granted by the United States Patent and Trademark Office (USPTO).

  • Patent number: 11976354
    Abstract: The method includes forming an inner monolithic layer from crystals of beta phase stoichiometric silicon carbide on a carbon substrate in the form of a rod by chemical methylsilane vapor deposition in a sealed tubular hot-wall CVD reactor. The method further includes forming a central composite layer over the inner monolithic layer by twisting continuous beta phase stoichiometric silicon carbide fibers into tows, transporting the tows to a braiding machine, and forming a reinforcing thread framework. A pyrocarbon interface coating is built up by chemical methane vapor deposition in a sealed tubular hot-wall CVD reactor. Then, a matrix is formed by chemical methylsilane vapor deposition in the reactor. A protective outer monolithic layer is formed from crystals of beta phase stoichiometric silicon carbide over the central composite layer by chemical methylsilane vapor deposition in a CVD reactor. And then the carbon substrate is removed from the fabricated semi-finished product.
    Type: Grant
    Filed: December 29, 2020
    Date of Patent: May 7, 2024
    Assignee: BOCHVARI HIGH-TECH. RES. INST. FOR INORG. MATERIALS
    Inventors: Leonid Aleksandrovich Karpyuk, Vladislav Konstantinovich Orlov, Sergey Igorevich Ivanov, Alexey Vladimirovich Glebov, Fyodor Viktorovich Makarov, Roman Gennadyevich Zakharov, Ivan Alexandrovich Dzyubinsky, Alexander Pavlovich Ponomarenko, Alexander Dmitrievich Bagdatyev
  • Patent number: 11959192
    Abstract: The method for producing non-core beta silicon carbide fibers includes four steps. The first step is spinning of multifilament polymeric fiber by melt-extrusion of polycarbosilane. The second step is thermooxidative cross-linking for which the produced spun polymeric fibers are cured in an oxidation furnace at a temperature of 175-250 degrees C. at a heating rate of 3-10 degrees C./h until their weight is increased by 6-15%. The third step is carbonization of the produced cured polymeric fibers with the conversion into the ceramic phase. The fourth step is finishing of the produced beta silicon carbide fiber. The effect of the invention is producing non-core silicon carbide fibers, improving their strength performance, improving resistance to high temperatures and their high creep resistance, stable fiber properties, optimal average diameter of fibers, absence of foreign impurities in the fiber composition.
    Type: Grant
    Filed: December 29, 2020
    Date of Patent: April 16, 2024
    Assignee: BOCHVAR HIGH-TECH. RES. INST. FOR INORG. MATERIALS
    Inventors: Leonid Aleksandrovich Karpyuk, Vladislav Konstantinovich Orlov, Sergey Igorevich Ivanov, Alexey Vladimirovich Glebov, Fyodor Viktorovich Makarov, Roman Gennadyevich Zakharov, Ivan Alexandrovich Dzyubinsky, Alexander Pavlovich Ponomarenko, Dmitry Vladimirovich Zhigalov, Alexander Pavlovich Korolev, Artem Andreevich Vorobyov
  • Publication number: 20230026460
    Abstract: The method for producing non-core beta silicon carbide fibers includes four steps. The first step is spinning of multifilament polymeric fiber by melt-extrusion of polycarbosilane. The second step is thermooxidative cross-linking for which the produced spun polymeric fibers are cured in an oxidation furnace at a temperature of 175-250 degrees C. at a heating rate of 3-10 degrees C./h until their weight is increased by 6-15%. The third step is carbonization of the produced cured polymeric fibers with the conversion into the ceramic phase. The fourth step is finishing of the produced beta silicon carbide fiber. The effect of the invention is producing non-core silicon carbide fibers, improving their strength performance, improving resistance to high temperatures and their high creep resistance, stable fiber properties, optimal average diameter of fibers, absence of foreign impurities in the fiber composition.
    Type: Application
    Filed: December 29, 2020
    Publication date: January 26, 2023
    Inventors: Leonid Aleksandrovich KARPYUK, Vladislav Konstantinovich ORLOV, Sergey Igorevich IVANOV, Alexey Vladimirovich GLEBOV, Fyodor Viktorovich MAKAROV, Roman Gennadyevich ZAKHAROV, Ivan Alexandrovich DZYUBINSKY, Alexander Pavlovich PONOMARENKO, Dmitry Vladimirovich ZHIGALOV, Alexander Pavlovich KOROLEV, Artem Andreevich VOROBYOV
  • Publication number: 20220415526
    Abstract: The end plug includes two parts in the form of coaxial cylinders having different diameters, the diameter of the part configured to be arranged inside the cladding is less than the cladding inner diameter by 0.06-0.08 and 2-3 mm, respectively, for interposing brazes of different types. An end plug according to the third variant is composed of three parts in the form of three successively arranged coaxial cylinders having different diameters, the diameter of the two parts configured to be arranged inside the cladding being less than the cladding inner diameter by 0.06-0.08 and 2-3 mm, respectively, for interposing brazes of two types simultaneously. The effects of the invention are safety for the environment, possibility of using the developed end plugs as an alternative for replacing plugs used in various reactors, proposal of a simplified method for manufacturing an end plug, improvements in mechanical and thermophysical properties of end plugs.
    Type: Application
    Filed: December 29, 2020
    Publication date: December 29, 2022
    Inventors: Leonid Aleksandrovich KARPYUK, Vladislav Konstantinovich ORLOV, Sergey Igorevich IVANOV, Alexey Vladimirovich GLEBOV, Fyodor Viktorovich MAKAROV, Roman Gennadyevich ZAKHAROV, Ivan Alexandrovich DZYUBINSKY, Alexander Pavlovich PONOMARENKO, Dmitry Vladimirovich KUZNETSOV
  • Publication number: 20220356564
    Abstract: The method includes forming an inner monolithic layer from crystals of beta phase stoichiometric silicon carbide on a carbon substrate in the form of a rod by chemical methylsilane vapor deposition in a sealed tubular hot-wall CVD reactor. The method further includes forming a central composite layer over the inner monolithic layer by twisting continuous beta phase stoichiometric silicon carbide fibers into tows, transporting the tows to a braiding machine, and forming a reinforcing thread framework. A pyrocarbon interface coating is built up by chemical methane vapor deposition in a sealed tubular hot-wall CVD reactor. Then, a matrix is formed by chemical methylsilane vapor deposition in the reactor. A protective outer monolithic layer is formed from crystals of beta phase stoichiometric silicon carbide over the central composite layer by chemical methylsilane vapor deposition in a CVD reactor. And then the carbon substrate is removed from the fabricated semi-finished product.
    Type: Application
    Filed: December 29, 2020
    Publication date: November 10, 2022
    Inventors: Leonid Aleksandrovich KARPYUK, Vladislav Konstantinovich ORLOV, Sergey Igorevich IVANOV, Alexey Vladimirovich GLEBOV, Fyodor Viktorovich MAKAROV, Roman Gennadyevich ZAKHAROV, Ivan Alexandrovich DZYUBINSKY, Alexander Pavlovich PONOMARENKO, Alexander Dmitrievich BAGDATYEV